US12437348B2 - Blockchain mine at oil or gas facility - Google Patents
Blockchain mine at oil or gas facilityInfo
- Publication number
- US12437348B2 US12437348B2 US17/952,132 US202217952132A US12437348B2 US 12437348 B2 US12437348 B2 US 12437348B2 US 202217952132 A US202217952132 A US 202217952132A US 12437348 B2 US12437348 B2 US 12437348B2
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- combustible gas
- mining
- generator
- gas
- blockchain
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06Q—INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
- G06Q50/00—Information and communication technology [ICT] specially adapted for implementation of business processes of specific business sectors, e.g. utilities or tourism
- G06Q50/06—Energy or water supply
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B41/00—Equipment or details not covered by groups E21B15/00 - E21B40/00
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
- F02M21/00—Apparatus for supplying engines with non-liquid fuels, e.g. gaseous fuels stored in liquid form
- F02M21/02—Apparatus for supplying engines with non-liquid fuels, e.g. gaseous fuels stored in liquid form for gaseous fuels
- F02M21/0203—Apparatus for supplying engines with non-liquid fuels, e.g. gaseous fuels stored in liquid form for gaseous fuels characterised by the type of gaseous fuel
- F02M21/0209—Hydrocarbon fuels, e.g. methane or acetylene
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
- F02M21/00—Apparatus for supplying engines with non-liquid fuels, e.g. gaseous fuels stored in liquid form
- F02M21/02—Apparatus for supplying engines with non-liquid fuels, e.g. gaseous fuels stored in liquid form for gaseous fuels
- F02M21/0218—Details on the gaseous fuel supply system, e.g. tanks, valves, pipes, pumps, rails, injectors or mixers
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B15/00—Systems controlled by a computer
- G05B15/02—Systems controlled by a computer electric
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F16/00—Information retrieval; Database structures therefor; File system structures therefor
- G06F16/20—Information retrieval; Database structures therefor; File system structures therefor of structured data, e.g. relational data
- G06F16/23—Updating
- G06F16/2308—Concurrency control
- G06F16/2315—Optimistic concurrency control
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06Q—INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
- G06Q10/00—Administration; Management
- G06Q10/06—Resources, workflows, human or project management; Enterprise or organisation planning; Enterprise or organisation modelling
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06Q—INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
- G06Q10/00—Administration; Management
- G06Q10/06—Resources, workflows, human or project management; Enterprise or organisation planning; Enterprise or organisation modelling
- G06Q10/063—Operations research, analysis or management
- G06Q10/0631—Resource planning, allocation, distributing or scheduling for enterprises or organisations
- G06Q10/06313—Resource planning in a project environment
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L67/00—Network arrangements or protocols for supporting network services or applications
- H04L67/01—Protocols
- H04L67/10—Protocols in which an application is distributed across nodes in the network
- H04L67/104—Peer-to-peer [P2P] networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L67/00—Network arrangements or protocols for supporting network services or applications
- H04L67/01—Protocols
- H04L67/10—Protocols in which an application is distributed across nodes in the network
- H04L67/1097—Protocols in which an application is distributed across nodes in the network for distributed storage of data in networks, e.g. transport arrangements for network file system [NFS], storage area networks [SAN] or network attached storage [NAS]
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06Q—INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
- G06Q2220/00—Business processing using cryptography
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J9/00—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting
- H02J9/04—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source
- H02J9/06—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source with automatic change-over, e.g. UPS systems
Definitions
- a method comprising using a source of combustible gas produced at a hydrocarbon production well, storage, or processing facility, to produce electricity to operate a blockchain mining device located at the hydrocarbon production well, storage, or processing facility, respectively.
- a method comprising using a source of combustible gas, which is produced from a remote oil or gas well, to produce electricity to operate a blockchain mining device.
- a method is disclosed of reducing vented or flared natural gas at upstream oil and gas facilities, the method consists of operating a natural gas aspirated prime mover fueled directly by the vented or flared gas source; the prime mover runs a generator to generate power, the generator powers a portable blockchain mine.
- An upstream oil and gas blockchain mining apparatus comprising a well, excess gas is captured off the casing of the well to run a natural gas engine, the engine runs both a hydraulic pump and a generator, the generator powers a portable blockchain mine, where the mining load is sized at the low end of the variable availability of gas; excess gas above the amount required to fuel the load is vented, where the mining load is sized at the low end of the variable availability of gas; the prime mover varies its torque based on the availability of the gas so as to minimize excess vented gas, excess power above the amount necessary to run the mining load is dissipated in a load bank, where the mining load is sized at the high end of the variable availability of gas; and make-up gas is taken from propane tanks on site or from line gas.
- An upstream oil and gas blockchain mining apparatus comprising a well, excess gas is captured off the casing of the well to run a prime mover such as an engine, turbine or boiler, the prime mover runs a generator, the generator powers a portable blockchain mine, where the mining load is sized at the low end of the variable availability of gas; excess gas above the amount required to fuel the load is vented, where the mining load is sized at the low end of the variable availability of gas; the prime mover vanes its torque based on the availability of the gas so as to minimize excess vented gas, excess power above the amount necessary to run the mining load is dissipated in a load bank, where the mining load is sized at the high end of the variable availability of gas; make-up gas is taken from propane tanks on site or from line gas.
- a prime mover such as an engine, turbine or boiler
- the prime mover runs a generator
- the generator powers a portable blockchain mine, where the mining load is sized at the low end of the variable availability of gas; excess gas above the amount required to fuel
- a portable blockchain mining apparatus comprising an enclosure containing the blockchain mining equipment, the enclosure having a ventilation mechanism, to dissipate the heat produced by the mining processors, for example one or more of an air supply fan, an exhaust fan, louvers, and others, the enclosure having a satellite, radio or cellular antenna to provide a connection to the internet, the enclosure containing network equipment such as a modem and network switch, the enclosure designed to be portable such as trailer mounted, the enclosure being insulated from the elements, the enclosure containing a natural gas aspirated engine and a generator to power the mining equipment, and the engine may comprise a turbine, where the enclosure is an intermodal shipping container, where the enclosure has a chiller or air cooling means fitted to it, the enclosure having a back-up heating means, such as a space heater, to be used to pre-heat the enclosure in case of shut down in cold weather.
- a ventilation mechanism to dissipate the heat produced by the mining processors, for example one or more of an air supply fan, an exhaust fan, louvers, and others, the
- the oil production, storage, or processing facility comprises a remote oil well.
- the oil production, storage, or processing facility comprise an oil storage or processing unit.
- the system is isolated from a sales gas line and an external electrical power grid.
- the source of combustible gas comprises the remote oil well; and the remote oil well is connected to produce a continuous flow of combustible gas to power the generator.
- a combustion engine is connected to the source of combustible gas and connected to drive the generator.
- the combustion engine is a prime mover that is connected to produce oil from the remote oil well.
- the combustion engine is a first combustion engine, and further comprising a second combustion engine that is a prime mover that is connected to produce oil from the remote oil well.
- the blockchain mining device has a network interface and a mining processor; the network interface is connected to receive and transmit data through the internet to a network that stores or has access to a blockchain database; and the mining processor is connected to the network interface and adapted to mine transactions into blocks associated with the blockchain database and to communicate with the blockchain database.
- the network is a peer to peer network; the blockchain database is a distributed database stored on plural nodes in the peer to peer network; and the blockchain database stores transactional information for a digital currency.
- a controller is connected to modulate a power load level exerted by the blockchain mining device on the generator, by increasing or decreasing the mining activity of the mining processor.
- the mining processor comprises a plurality of mining processors; and the controller is connected to modulate the maximum power load level by increasing or decreasing a maximum number of mining processors that are engaged in mining.
- the source of combustible gas comprises the remote oil well, which is connected to produce a continuous flow of combustible gas to operate the generator.
- the controller is connected to modulate the power load level in response to variations in a production rate of combustible gas from the remote oil well.
- the combustion engine is a first combustion engine, and further comprising: prior to supplying combustible gas to the first combustion engine, connecting the first combustion engine to receive combustible gas from the remote oil well; and using a second combustion engine as a prime mover to produce oil from the remote oil well.
- Operating the blockchain mining device to: mine transactions with the blockchain mining device, for example by mining the most recent block on the blockchain with the blockchain mining device; and communicate wirelessly through the internet to communicate with a blockchain database. Modulating, using a controller, a power load level exerted by the blockchain mining device on the generator, by increasing or decreasing the mining activity of the blockchain mining device, for example the mining activity of plural mining processors contained within the blockchain mining device.
- the blockchain mining device comprises a plurality of mining processors; and modulating comprises modulating the power load level by increasing or decreasing a maximum number of mining processors that are engaged in mining. Modulating comprises modulating the power load level in response to variations in a production rate of combustible gas from the remote oil or gas well.
- a production rate of combustible gas from the remote oil or gas well varies between a daily minimum production rate and a daily maximum production rate; and modulating comprises limiting, while the production rate is above the daily minimum production rate, the power load level to at or below a power level producible by the generator when the production rate is at the daily minimum production rate.
- a production rate of combustible gas from the remote oil or gas well varies between a daily minimum production rate and a daily maximum production rate; and modulating comprises limiting the power load level to above a power level produced by the generator when the production rate is at the daily minimum production rate; and supplying from a backup fuel or electricity source a shortfall in fuel or electricity, respectively, required to supply the blockchain mining device with the power load level.
- the power load level is limited to above a power level produced by the generator when the production rate is at the daily maximum production rate.
- the blockchain mining device may be replaced by a suitable mining device or data center.
- the prime mover is connected to drive a pump jack or a rotating drive head mounted to the remote oil well.
- the power unit comprises a generator driven by a power take off from the prime mover.
- a compressor is connected to pressurize natural gas supplied from the source of natural gas to the power unit.
- the source of combustible gas comprises raw natural gas.
- the remote oil well comprises a plurality of remote oil wells.
- the network interfaces comprises one or more of a satellite, cellular, or radio antenna, connected to a modem. Successfully mining a block by a mining processor provides a reward of the digital currency, and the reward is assigned to a digital wallet or address stored on a computer readable medium.
- the source of vented or flared natural gas is derived from combustible vapors produced as a result of oil treating or processing, such as an oil storage tank, separating vessel, or a free water knockout.
- the source of vented or flared natural gas is sourced from the inlet line of a flare, incinerator, combustor or burner. Retrofitting an existing natural gas engine running a hydraulic pump to also run a generator, the generator powering a portable blockchain mine.
- the mining load is sized at the low end of a variable vented or flared gas supply such that back-up fuel requirement usage is minimized, the excess gas over and about the amount required to fuel the mining load is vented or flared (combusted).
- the mining load is sized at the low end of a variable vented or flared gas supply such that back-up fuel requirement usage is minimized, the engine is controlled to throttle up or down based on the availability of excess gas so as to produce more torque, the additional torque generates excess power above that required to run the mining load, the excess power is directed to a load bank and dissipated as heat, and thus venting is minimized.
- the electrical load (of the mining hardware) is sized at the high end of a fluctuating excess or stranded gas supply such that venting or flaring is minimized or eliminated, where shortages in gas supply are made up from available back-up fuel such as propane or line gas. Changing the blockchain mine electrical load overtime in response to changes in the excess or stranded gas volume availability.
- the mining load can be changed through the addition or removal of mining processors. Minimizing the vented or flared gas volumes by changing the mining hardware load in reaction to observed changes in average natural gas source rates over time. Minimizing the consumed back up fuel volumes by changing the mining hardware load in reaction to observed changes in average natural gas source rates overtime.
- FIG. 1 is a schematic illustrating a system for powering a blockchain mine at a remote oil well using a generator retrofitted to a prime mover, which operates a drivehead to pump oil up from the reservoir.
- FIG. 2 is a schematic illustrating another embodiment of a system for powering a blockchain mine at a remote oil well, with a prime mover (engine) operating the drivehead, and another engine and generator connected to the remote well for powering the blockchain mine independent of the prime mover that operates the drive head.
- engine prime mover
- FIG. 4 is a schematic depicting a blockchain mining device with a plurality of mining processors and associated control and network equipment housed within a portable enclosure.
- FIG. 5 A is a graph that illustrates short-term changes in available natural gas produced over time by an oil production, storage, or processing facility.
- FIG. 5 B is a graph that illustrates long-term changes in available natural gas produced over time by an oil production, storage, or processing facility.
- FIG. 6 is a perspective view of an intermodal shipping container housing blockchain mining equipment for use at a remote oil or gas production, storage, or processing facility.
- FIGS. 6 A, 6 B, and 6 C are diagrams that illustrate a) a peer-to-peer network, b) a layout of hardware forming a single node in the peer-to-peer network, and c) a conceptual illustration of a blockchain database stored on an individual node, respectively.
- Natural gas is a naturally occurring combustible gas, often in the form of a mixture of hydrocarbon gases that is highly compressible and expansible.
- Methane (CH 4 ) is the chief constituent of most natural gas (constituting as much as 85% of some natural gases), with lesser amounts of ethane, propane, butane, and pentane. Impurities may also be present in large proportions, including carbon dioxide (CO 2 ), helium, nitrogen, and hydrogen sulfide (H 2 S).
- Natural gas may also be liberated out of solution from the oil as it is treated, such as in a tank on the well site or as it is undergoes further refinement at a downstream facility.
- natural gas may be produced as the primary product, for example from a gas well, or as a by-product of oil production, for example from an oil well.
- Raw natural gas may require processing before it can be sold via a sales gas line.
- the pressure is usually less than 1,000 pounds per square inch gage (PSIG). It is important that no liquids form in the line because of condensation of either hydrocarbons or water. Hydrocarbon liquids reduce the pipeline efficiency and might hold up in the line to form liquid slugs, which might damage downstream compression equipment. Condensed water can do the same damage. Additionally, water may form solid complexes (hydrates), which accumulate and block the line. Further, it may be economical to extract liquefiable hydrocarbon components, which would have a higher market value on extraction as compared with their heating value if left in the gas.
- PSIG pounds per square inch gage
- a source of natural gas may be located at a remote oil and gas site, for example one that is lacking in accessible infrastructure such as an external pipeline network (sales line) or external power grid to sell into.
- accessible infrastructure such as an external pipeline network (sales line) or external power grid to sell into.
- the operator is forced to do something with the excess or stranded gas and is left with few options.
- Such options currently include venting the gas to atmosphere un-combusted, combusting the gas on site via flare, incinerator, or combustor, or worst case scenario ceasing production of the gas source, for example shutting in the oil well.
- Combustion disposal options while more environmentally friendly than venting, represent a significant capital expense and do not provide utility for the operator.
- Combustion options include, but are not limited to, flaring and incineration.
- Combustion disposal methods produce waste heat and essentially represent waste of the potential energy of the gas. Such options may represent a capital liability to the operator, as such do not generate any revenue. Both combustion and venting can pose health concerns to nearby residents and are typically considered a nuisance.
- the remote oil or gas well 14 may be isolated from one or more of a sales gas line or external power grid. Isolated may refer to the fact the no sales gas line or external power grid, as the case may be, is located within a distance that would be economically feasible to connect into, for example such infrastructure may be more than five, ten, fifty, or a hundred kilometers away. Oil and gas production, storage, and processing assets are often distributed across remote locations. For example, well-sites can be remote and isolated from conventional communications equipment making the retrieval of well-site data difficult and unreliable. Some locations can be so remote, that periodic on-site visits are required to manually or semi-manually retrieve data. Some locations are only accessible via off-road vehicles or helicopter.
- Raw gas may be a gas directly produced from the well, or otherwise unprocessed.
- Raw gas may contain natural gas liquids (condensate, natural gasoline, and liquefied petroleum gas), water, and some other impurities such as nitrogen, carbon dioxide, hydrogen sulfide and helium.
- system 10 may be located at a remote oil well.
- the source of combustible gas comprises the remote oil well, 14.
- the remote oil well 14 may be connected to produce a continuous flow of combustible gas to power the generator 28 , for example by supply of combustible gas to a combustion engine 24 that is connected to drive the generator 28 .
- an internal combustion engine 24 such as a motor, may be set up to operate as, or to drive, a prime mover, such as a pump jack or rotating drivehead 16 , which is connected to produce oil from the remote oil well 14 .
- a prime mover in this document refers to any machine that converts energy from a source energy into mechanical energy, as a motive power source providing energy to move the components that pump oil from the well 14 .
- a pumpjack converts the rotary motion of a driveshaft of the engine 24 to a vertical reciprocating motion of a walking beam to raise and lower the pump shaft (polished rod) to operate a downhole pump positioned at the base of production tubing in the well.
- a rotating drivehead 16 is a top side motor that rotates the polished rod to operate a downhole moineau or progressing cavity pump, which in turn drives oil up the production tubing to surface.
- Driveheads and pumpjacks are examples of artificial lift systems, other examples of which include bottom hole motors.
- a rotating drivehead may incorporate a hydraulic motor that is driven by a hydraulic pump 26 , which is driven by the prime mover or engine 24 , for example via supply and return hydraulic lines 18 and 20 .
- the prime mover or engine 24 is connected to receive as fuel natural gas from the source of combustible gas, in this case well 14 , for example via gas tree 22 and supply line 54 .
- the engine 56 and generator 28 may be supplied as part of the mining device 12 in some cases, for example as a skid or trailer-mounted unit, in order to provide a turnkey or plug-and-play system that may be transported to the well 14 , hooked up to the gas supply or tree 22 , and operated.
- the mining device 12 may be powered by gas from a plurality of sources, such as a plurality of remote oil wells 14 A-D.
- the plurality of remote oil wells 14 A-D may be located on a multi-well pad 118 , for example a plurality of horizontal wells that penetrate the same hydrocarbon reservoir.
- the plurality of remote oil wells 14 A-D may include one or more satellite wells.
- a satellite well includes a well that is separate from a main group of wells or another well, but whose production is directed to a common processing facility.
- a satellite well may include a well that penetrates the same hydrocarbon reservoir as other wells in the plurality of wells.
- a compressor 62 or other suitable device may be used to pressurize the gas supplied to engine 56 .
- the engine 56 and generator 28 may form a standalone unit or may be connected for other functions on the site, such as to pump a well or power communications or electrical equipment.
- Pressurized natural gas from compressor 62 may be used to fuel lease equipment 64 , such as control equipment, communications equipment, surveillance equipment, heaters, or other components.
- Excess or unused gas may be directed to a gas disposal or storage device such as an atmospheric vent or combustion device, in this case a flare 68 . Gas may be diverted from flare 68 to engine 56 via an excess gas line 70 .
- a blockchain facilitates secure online transactions.
- a blockchain is a decentralized digital ledger that records transactions on thousands of computers globally in such a way that the registered transactions cannot be altered retrospectively. This allows the participants to verify and audit transactions in an inexpensive manner. Transactions are authenticated by mass collaboration powered by collective self-interests. The result is a robust workflow where participants' uncertainty regarding data security is marginal.
- the use of a blockchain removes the characteristic of infinite reproducibility from a digital asset. It confirms that each unit of digital cash was spent only once, solving the long-standing problem of double spending.
- Blockchains have been described as a value-exchange protocol. This exchange of value can be completed more quickly, more safely and more cheaply with a blockchain.
- a blockchain can assign title rights because it provides a record that compels offer and acceptance. From the technical point of view a blockchain is a hashchain inside another hashchain.
- Maintaining a blockchain database is referred to as mining, which refers to the distributed computational review process performed on each block of data in a block-chain. This allows for achievement of consensus in an environment where neither party knows or trusts each other. Those engaged in BITCOINTM mining are rewarded for their effort with newly created BITCOINTMs and transaction fees, which may be transferred to a digital wallet of a user upon completion of a designated task.
- BITCOINTM miners may be located anywhere globally and may be operated by anyone. The mining hardware is tied to the blockchain network via an internet connection. Thus, little infrastructure is needed to operate and contribute to the system. All that is required to become a BITCOINTM miner is the appropriate computer hardware, an internet connection and low cost electricity. The cheaper the electricity the more reward the miner will receive relative to competition, other miners.
- Mining may also be the mechanism used to introduce BITCOINTMs into the system: Miners are paid any transaction fees as well as a subsidy of newly created coins. This both serves the purpose of disseminating new coins in a decentralized manner as well as motivating people to provide security for the system.
- BITCOINTM mining is so called because it resembles the mining of other commodities: it requires exertion and it slowly makes new currency available at a rate that resembles the rate at which commodities like gold are mined from the ground.
- CPU central processing unit or central processor
- a cryptographic hashing algorithm associated with the particular blockchain protocol.
- CPU central processing unit or central processor
- each node 122 may correspond to and be defined by a physical device 126 , such as a computer.
- Device 126 may have one or more of storage and processing circuitry 128 and mining circuitry 130 if the node operates as a miner.
- Storage and processing circuitry 128 may have storage circuitry, for example hard disk drive storage, nonvolatile memory such as flash memory or other electrically-programmable-read-only memory configured to form a solid state drive, or volatile memory such as static or dynamic random-access-memory.
- Processing circuitry of storage and processing circuitry 128 may be used to control the operation of device 126 .
- Storage circuitry 128 may store one or more copies of a portion or the entirety of the distributed database 132 .
- processing circuitry may include suitable hardware components such as microprocessors, microcontrollers, and digital signal processors, or dedicated processing circuits such as application specific integrated circuits.
- Mining circuitry 130 for example an integrated circuit chip, may be used to perform data mining operations, for example verifying cryptocurrency transactions.
- Network communication hardware 131 may be used to communicate with other nodes and the network in general.
- storage and processing circuitry 128 may maintain or store a blockchain database 132 .
- the blockchain database 132 may store data as a series of interconnected blocks 134 , for example blocks 134 A-C. Each block 134 may have a respective header and contents and the header may contain the previous block's hash. Such information may be used in linking a new block, for example block 136 , into the blockchain database 132 . A new block 136 may be added to the chain as transactions are verified and confirmed into the blockchain.
- each blockchain mining device 12 may be composed of suitable components.
- the blockchain mining device 12 may have a network interface, such as network equipment 88 , and one or a plurality of mining processors 92 ( 92 A- 92 E for example).
- the network interface may be connected to receive and transmit data through the internet to a node on the network 120 ( FIG. 6 A ), or to a mining pool (not shown), that stores or has access to a blockchain database, which may be for a digital currency.
- the mining processor or processors may be connected to the network interface and adapted to mine new transactions into the blockchain database and to communicate with the blockchain database. Referring to FIG.
- the network interface or interfaces may have a configuration suitable for receiving and transmitting data through the internet to the network.
- a network interface may comprise one or more communication device such as a network antenna 96 A, a satellite antenna or dish 96 B, a cellular antenna, or a radio antenna.
- the network equipment 88 may include or be connected to a modem.
- system 10 may be mounted within a portable enclosure 98 suitable for transporting blockchain mining device 12 between locations.
- the blockchain mining device 12 ( FIG. 1 ) may be skid or trailer-mounted.
- the blockchain mining device 12 may be located in a portable enclosure 98 , for example an intermodal transport container as shown.
- the portable enclosure 98 may have an access door 102 such as a man door, for example to permit entry and exit of a person such as equipment maintenance staff into and out of the enclosure 98 .
- Portable enclosure 98 may have an end gate 100 to permit entry and exit of data mining equipment, for example mining processors 92 , or power generating equipment such as engine 56 and generator 28 , into and out of the enclosure 98 .
- One or more network communications equipment 96 may be mounted to the enclosure 98 , for example to a top side 98 A of the enclosure 98 or at another suitable location.
- Enclosure 98 may have an air supply, such as a centrifugal fan 106 , for example driven by a motor 104 , in order to cool and ventilate internal components to prevent system downtime or damage from overheating.
- Enclosure 98 may have one or more exhaust fans 108 and/or louvers, for example to facilitate air flow out of, or into, enclosure 98 for heat dissipation from enclosure 98 .
- Enclosure 98 may have an air supply, such as an air supply fan 106 , and may have an air supply filter (not shown) and conditioning equipment such as a dehumidifier (not shown) to provide a quality air supply for the enclosure 98 .
- an intermodal container is a relatively large rectangular box-shaped standardized shipping container, designed and built for intermodal freight transport, meaning these containers can be used across different modes of transport—from ship to rail to truck—without unloading and reloading their cargo.
- Intermodal containers are primarily used to store and transport materials and products efficiently and securely in the global containerized intermodal freight transport system, but smaller numbers are in regional use as well. These containers are known under a number of names, such as simply container, cargo or freight container, ISO container, shipping, sea or ocean container, container van or (Conex) box, or seacan.
- Intermodal containers exist in many types and a number of standardized sizes, but ninety percent of the global container fleet are so-called dry freight or general purpose containers, which are durable closed steel boxes, mostly of either twenty or forty foot standard length. Common heights are 8 feet 6 inches and 9 feet 6 inches—the latter are known as High Cube or Hi-Cube containers. Intermodal containers often include corrugated walls 101 for strength. Each corner of the container may include a twistlock fitting 103 for securing the container to other containers and to various transportation devices such as a container trailer for a road-based tractor unit. Reinforcing beams 105 may span the edges of the container, for example the vertical columns that make up the four corners between sidewalls, and the horizontal beams that make up the longitudinal and lateral side edges of the base of the container.
- the generator 28 may produce polyphaser power, such as three phase power, which may be useful to run large loads such as the ventilation fan 76 and chiller 78 .
- the power may travel into a step-down transformer 80 .
- a transformer 80 may or may not be required depending on what voltage the generator makes. Transformer 80 may convert the input voltage to the required voltage to run the rest of the equipment. The transformer or transformers 80 may also convert the three phase power to single phase power. After the transformer the power may travel into a distribution panel 82 . The panel 82 may feed power into the rest of the equipment.
- a contactor panel 84 may be used to switch on and off various mining processor circuits each connected to one or more mining processors 92 . Different mining processor circuits may be designed for different voltages, as some mining processor power supplies run on 120V, and some run on 208V.
- the network equipment 88 block may provide a source of internet connection.
- a satellite/cellular/and/or radio antenna or other network communication equipment 96 may be fitted on the mining device 12 and connected to a modem.
- the modem may feed a network switch that has ethernet ports.
- Each mining processor controller may need one ethernet port.
- the network connection may also feed a controller or controllers 86 , which may be a programmable logic controller (PLC), which may be accessed remotely.
- PLC programmable logic controller
- the controller 86 may be connected to at least a thermistor 90 (temperature sensor) within the mining device 12 , to allow the controller 86 to control the ventilation and chilling loads within the enclosure 98 .
- a heating system may initiate that may or may not leverage the air ventilation infrastructure to distribute heat.
- Plural controllers may be incorporated, for example to carry out different tasks, for example one controller for temperature control and another for mining processor control.
- the enclosure 98 may be structured to insulate its contents from the elements.
- the enclosure 98 may have a back-up heating device such as a space heater (not shown), for example to be used to heat the enclosure 98 in case of shut down in cold weather.
- the controller 86 may be connected to modulate the power load level in response to variations in a supply or production rate of natural gas from the source of natural gas, for example a production rate of the well 14 .
- the controller 86 may modulate the power load by modulating the mining activity, or hashrate, of a mining processor 92 to correspond with either or both a) readings from a production rate sensor (not shown), or b) a measured gas production time profile based on recent (for example readings taken over the last week) historical gas production readings taken from the well, such as is shown in FIG. 5 A .
- the controller 86 increase mining activity, or hashrate, of mining processor 92 , thereby drawing more power which results in a larger power load and gas consumption of the engine 56 .
- the mining activity may decrease. Adjustments may be made in real time to maximize the use of the casinghead gas produced and to minimize waste of either electricity generated or excess gas sent to a disposal device.
- the power load level 152 may be set in relation to a daily minimum production rate 155 B of natural gas.
- a production rate of combustible gas from the remote oil well 14 may vary between a daily minimum production rate 155 B and a daily maximum production rate 155 A.
- the controller 86 may be set to limit the power load level to at or below a power level 152 producible by the generator 28 when the production rate is at the daily minimum production rate.
- the controller 86 may retain a stable and consistent number of mining processors 92 in operation all day long. Venting may be decreased and little control philosophy may be required. Such a method may not completely eliminate waste such as venting however waste is reduced.
- the power load level may be set in relation to a daily maximum production rate 155 A of natural gas, with shortfall made up by a backup source of fuel or electricity.
- the controller 86 may be set to limit the power load level 150 to above a power level producible by the generator 28 when the production rate 155 is at the daily minimum production rate 155 B.
- the power level is set to be limited at least while the production rate 155 is above the daily minimum production rate 155 B, or for another suitable time period such as eight, twelve, twenty-four or longer periods of time.
- the power load level may be set to at, below, or above the maximum power level producible by the generator 28 when the production rate 155 is at the daily maximum production rate 155 A.
- a backup source, of fuel or electricity in this case one or more of propane tanks 30 A, 30 B, underground fuel supply line 46 , and gas outlet line 42 from production storage tank 34 , may be connected make up shortfalls in fuel or electricity, respectively, required to supply the blockchain mining device 12 with the power load level.
- vented gas is eliminated but back-up fuel use may be increased, thus operating costs may rise relative to the daily low embodiment (embodiments where power load level is set in relation to the daily minimum production rate 155 B in FIG. 5 A ) because of the requirement for the backup fuel or electricity source.
- the production rate of the well may be higher than the production rate of gas that arrives at the engine 24 or 56 , however, due to the varying production rate, the fluctuation in the graph gives an indication of the proportional fluctuation in the actual production rate received by the engine 24 or 56 as the case may be.
- the engine 24 or 56 is undersized and cannot consume the maximum available gas, in which case the gas is sent to a gas disposal or storage device via pressure regulation in the gas tree and/or at the engine.
- the engine may comprise a throttle that permits some variation in gas consumption and power production at the engine level, and in some cases the controller 86 is set to operate the throttle.
- the power load level may be set in between the daily maximum and minimum production rates, with a backup energy or fuel source and a method of disposing or storing of excess gas.
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Abstract
Description
| TABLE 1 |
| Typical Sales Gas Specification |
| Sales Gas Specification | |||
| Component | (maximum limits) | ||
| H2S (ppm) | 10-16 | ||
| O2 (mol. %) | 0.0 | ||
| CO2 (mol. %) | 2-3 | ||
| Moisture (mg/L and lb/mmscf) | 0.1-.16 (4-10) | ||
Claims (58)
Priority Applications (4)
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| US18/198,769 US12437349B2 (en) | 2017-02-08 | 2023-05-17 | Blockchain mining system with load modulation |
| US18/214,412 US12462312B2 (en) | 2017-02-08 | 2023-06-26 | Blockchain mine at oil or gas facility |
| US18/386,981 US12450671B2 (en) | 2017-02-08 | 2023-11-03 | Blockchain mining system with load modulation |
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| US202016484728A | 2020-01-06 | 2020-01-06 | |
| US17/952,132 US12437348B2 (en) | 2017-02-08 | 2022-09-23 | Blockchain mine at oil or gas facility |
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| US202016484728A Continuation | 2017-02-08 | 2020-01-06 |
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|---|---|
| US12462312B2 (en) | 2025-11-04 |
| US12437349B2 (en) | 2025-10-07 |
| US20240078616A1 (en) | 2024-03-07 |
| WO2018145201A1 (en) | 2018-08-16 |
| US20200051184A1 (en) | 2020-02-13 |
| US12450671B2 (en) | 2025-10-21 |
| US11574372B2 (en) | 2023-02-07 |
| US20230153928A1 (en) | 2023-05-18 |
| CA3090944A1 (en) | 2018-08-16 |
| US20230289902A1 (en) | 2023-09-14 |
| US20230334600A1 (en) | 2023-10-19 |
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